4.7 Article

Optimal Shaping of the MMC Circulating Currents for Preventing AC-Side Power Oscillations From Propagating Into HVdc Grids

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JESTPE.2019.2894677

关键词

Circulating current control; constrained optimization; energy balancing control; high-voltage dc (HVdc) transmission; Lagrange multipliers method; modular multilevel converters (MMCs)

资金

  1. ENERGIX Program of the Research Council of Norway through the project HVDC Inertia Provision (HVDC Pro)
  2. French Association of Research and Technology through a Convention Industrielle de Formation par la REcherche (CIFRE) Ph.D. Fellowship
  3. Statnett
  4. Equinor
  5. RTE
  6. ELIA [268053/E20]

向作者/读者索取更多资源

A constrained optimization problem based on the Lagrange multipliers method is formulated to derive the circulating current references of modular multilevel converters (MMCs) directly in abc coordinates. The resulting analytic expressions for calculating the circulating current reference signals are designed to eliminate oscillations in the dc-side power flow, independently of the ac-side operation of the MMC. As a result of the constrained optimization, the circulating currents are shaped to optimally utilize the degrees of freedom provided by the internal energy buffering capacity of the MMC, to effectively decouple the ac-grid conditions from the dc bus. This property of the proposed control method makes it especially suitable for preventing oscillations due to unbalanced ac-grid voltage conditions from propagating into multiterminal high-voltage dc systems. It is shown that the power flow at the dc-side of the MMC will he most effectively decoupled from ac-side transients if the desired steady-state power flow is imposed by acting directly on the circulating current references instead of by acting on the ac-side current references. The operation of an MMC controlled by the proposed approach is demonstrated by simulation studies, verifying the ability to keep the de power flow free of second harmonic oscillations, independently of the power control objectives applied for calculating the ac-side current references of the converter.

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